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Pulsatile flow effects on the hemodynamics of intracranial aneurysms.
Trung B. Le
, Iman Borazjani
, Fotis Sotiropoulos
Civil, Environmental, and Geo- Engineering
St. Anthony Falls Laboratory
Research output
:
Contribution to journal
›
Article
›
peer-review
62
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Scopus citations
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Keyphrases
Flow Effect
100%
Dome
100%
Intracranial Aneurysm
100%
Pulsatility Index
100%
Pulsatile Flow
100%
Aneurysm
40%
Wall Shear Stress
40%
Vortex Dynamics
40%
Aneurysm Model
40%
Vortex Ring Formation
40%
Flow Pattern
20%
Impingement
20%
High-resolution Simulation
20%
Sidewall
20%
Anatomic
20%
Reynolds number
20%
Shear Layer
20%
Vortex Ring
20%
Physiologic Range
20%
Aneurysm Neck
20%
Driven Cavity Flow
20%
Flow Waveform
20%
Mean Flow
20%
Incoming Flow
20%
Recirculating Flow
20%
Sidewall Aneurysm
20%
Characteristic Timescales
20%
Spatial Characteristics
20%
Temporal Features
20%
Wave Form
20%
Cavity Mode
20%
Parent Artery
20%
Womersley number
20%
Shear Stress Pattern
20%
Ring Mode
20%
Hemodynamic Shear Stress
20%
Shear Stress Field
20%
Quasi-stationary
20%
Strongly Correlated
20%
Engineering
Side Wall
100%
Wall Shear Stress
100%
Vortex Dynamics
100%
Reynolds' Number
50%
Stress Field
50%
Key Parameter
50%
Characteristic Time
50%
High Resolution
50%
Waveform
50%
Shear Layer
50%
Ring Mode
50%
Cavity Flow
50%
Parent Artery
50%
Computer Simulation
50%
Flow Distribution
50%
Physics
Vortex Ring
100%
Transportation
66%
Stress Distribution
33%
Shear Layer
33%
Waveform
33%
High Resolution
33%
Flow Distribution
33%
Reynolds Number
33%
Cavity Flow
33%
Numerical Simulation
33%
Chemical Engineering
Computer Simulation
100%